Daniel T. Simon
Linköping University, Karolinska Institutet, University of California Santa Cruz, University of Georgia
About
Daniel Simon received his Bachelor's degree in Physics from the University of Georgia, Athens (USA) in 2000, where he participated in theoretical condensed matter research under Professor Michael Geller. In 2001, he began his graduate work in the Physics department at the University of California, Santa Cruz (USA). There, he joined the laboratory of Professor Sue Carter, studying a range of topics in polymer-based electronics. In 2004, Daniel received his Master's degree, based on electronically patterned polymer films on micro-electrode arrays. In the Spring of 2007, he earned his PhD, based on polymer light-emitting electrochemical cells (LECs) and nanoparticle-based non-volatile memory (in collaboration with Dr. Campbell Scott and Dr. Luisa Bozano at IBM Almaden). Later that year, he joined the Laboratory of Organic Electronics as a postdoctoral researcher, where he focused on converting an in vitro delivery technology for use in a living animal, and later for use in self-regulated artificial neuron functionality. Since 2011, Daniel has led the Organic Bioelectronics division of the Laboratory of Organic Electronics, becoming Assistant Professor in 2013 and Associate Professor (docent) in 2016.
Employment
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Linköping University Associate Professor2013 - Present
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Linköping University Assistant Research Professor2011 - 2013
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Karolinska Institutet Postdoctoral Researcher2009 - 2011
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Linköping University Postdoctoral Researcher2007 - 2011
Education
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University of California Santa Cruz PhD2001 - 2007
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University of Georgia Bachelors of Science1996 - 2000
Projects & Funding
Projects & funding information is unavailable.
Publications (74)
- Polyelectrolyte Design Principles for Electrophoretic Drug Delivery Save
- Enzymatically Polymerized Glycolated Conductive Polymers as Soft Electrodes for Neural Bioelectronic Interfaces Save
- Suspension polymerization of bioelectronic interfaces on living cells Save
- Fumarate dramatically enhances biocurrent output in Shewanella-based bioelectrochemical system Save
- Enzymatically Polymerized Organic Conductors on Native Lipid Membranes Save
- Vertical organic electrochemical transistor platforms for efficient electropolymerization of thiophene based oligomers Save
- Tuning the Emission of Bis-ethylenedioxythiophene-thiophenes upon Aggregation Save
- Single-walled Carbon Nanotubes Wrapped with Charged Polysaccharides Enhance Extracellular Electron Transfer Save
- Organic Electrochemical Transistor Aptasensor for Interleukin-6 Detection Save
- From synthetic vesicles to living cells: Anchoring conducting polymers to cell membrane Save